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Autophagy Promotes Primary Ciliogenesis by Removing OFD1 from Centriolar Satellites

The primary cilium is a microtubule-based organelle that functions in sensory and signaling pathways. Defects in ciliogenesis can lead to a group of genetic syndromes known as ciliopathies(1–3). However, the regulatory mechanisms of primary ciliogenesis in normal and cancer cells are incompletely un...

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Autores principales: Tang, Zaiming, Lin, Mary Grace, Stowe, Timothy R., Chen, She, Zhu, Muyuan, Stearns, Tim, Franco, Brunella, Zhong, Qing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4075283/
https://www.ncbi.nlm.nih.gov/pubmed/24089205
http://dx.doi.org/10.1038/nature12606
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author Tang, Zaiming
Lin, Mary Grace
Stowe, Timothy R.
Chen, She
Zhu, Muyuan
Stearns, Tim
Franco, Brunella
Zhong, Qing
author_facet Tang, Zaiming
Lin, Mary Grace
Stowe, Timothy R.
Chen, She
Zhu, Muyuan
Stearns, Tim
Franco, Brunella
Zhong, Qing
author_sort Tang, Zaiming
collection PubMed
description The primary cilium is a microtubule-based organelle that functions in sensory and signaling pathways. Defects in ciliogenesis can lead to a group of genetic syndromes known as ciliopathies(1–3). However, the regulatory mechanisms of primary ciliogenesis in normal and cancer cells are incompletely understood. Here, we demonstrate that autophagic degradation of a ciliopathy protein OFD1 (oral-facial-digital syndrome 1) at centriolar satellites promotes primary cilium biogenesis. Autophagy is a catabolic pathway in which cytosol, damaged organelles, and protein aggregates are engulfed in autophagosomes and delivered to lysosomes for destruction(4). We show that the population of OFD1 at the centriolar satellites is rapidly degraded by autophagy upon serum starvation. In autophagy-deficient Atg5 or Atg3 null mouse embryonic fibroblasts, Ofd1 accumulates at centriolar satellites, leading to fewer and shorter primary cilia and a defective recruitment of BBS4 (Bardet-Biedl syndrome 4) to cilia. These defects are fully rescued by Ofd1 partial knockdown that reduces the population of Ofd1 at the centriolar satellites. More strikingly, OFD1 depletion at centriolar satellite promotes cilia formation in both cycling cells and transformed breast cancer MCF7 cells that normally do not form cilia. This work reveals that removal of OFD1 by autophagy at centriolar satellites represents a general mechanism to promote ciliogenesis in mammalian cells. These findings define a newly recognized role of autophagy in organelle biogenesis.
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spelling pubmed-40752832014-06-30 Autophagy Promotes Primary Ciliogenesis by Removing OFD1 from Centriolar Satellites Tang, Zaiming Lin, Mary Grace Stowe, Timothy R. Chen, She Zhu, Muyuan Stearns, Tim Franco, Brunella Zhong, Qing Nature Article The primary cilium is a microtubule-based organelle that functions in sensory and signaling pathways. Defects in ciliogenesis can lead to a group of genetic syndromes known as ciliopathies(1–3). However, the regulatory mechanisms of primary ciliogenesis in normal and cancer cells are incompletely understood. Here, we demonstrate that autophagic degradation of a ciliopathy protein OFD1 (oral-facial-digital syndrome 1) at centriolar satellites promotes primary cilium biogenesis. Autophagy is a catabolic pathway in which cytosol, damaged organelles, and protein aggregates are engulfed in autophagosomes and delivered to lysosomes for destruction(4). We show that the population of OFD1 at the centriolar satellites is rapidly degraded by autophagy upon serum starvation. In autophagy-deficient Atg5 or Atg3 null mouse embryonic fibroblasts, Ofd1 accumulates at centriolar satellites, leading to fewer and shorter primary cilia and a defective recruitment of BBS4 (Bardet-Biedl syndrome 4) to cilia. These defects are fully rescued by Ofd1 partial knockdown that reduces the population of Ofd1 at the centriolar satellites. More strikingly, OFD1 depletion at centriolar satellite promotes cilia formation in both cycling cells and transformed breast cancer MCF7 cells that normally do not form cilia. This work reveals that removal of OFD1 by autophagy at centriolar satellites represents a general mechanism to promote ciliogenesis in mammalian cells. These findings define a newly recognized role of autophagy in organelle biogenesis. 2013-10-02 2013-10-10 /pmc/articles/PMC4075283/ /pubmed/24089205 http://dx.doi.org/10.1038/nature12606 Text en Users may view, print, copy, download and text and data- mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Tang, Zaiming
Lin, Mary Grace
Stowe, Timothy R.
Chen, She
Zhu, Muyuan
Stearns, Tim
Franco, Brunella
Zhong, Qing
Autophagy Promotes Primary Ciliogenesis by Removing OFD1 from Centriolar Satellites
title Autophagy Promotes Primary Ciliogenesis by Removing OFD1 from Centriolar Satellites
title_full Autophagy Promotes Primary Ciliogenesis by Removing OFD1 from Centriolar Satellites
title_fullStr Autophagy Promotes Primary Ciliogenesis by Removing OFD1 from Centriolar Satellites
title_full_unstemmed Autophagy Promotes Primary Ciliogenesis by Removing OFD1 from Centriolar Satellites
title_short Autophagy Promotes Primary Ciliogenesis by Removing OFD1 from Centriolar Satellites
title_sort autophagy promotes primary ciliogenesis by removing ofd1 from centriolar satellites
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4075283/
https://www.ncbi.nlm.nih.gov/pubmed/24089205
http://dx.doi.org/10.1038/nature12606
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